Effect of water addition and nitrogen fertilization on the fluxes of CH4, CO2, NOx, and N2O following five years of elevated CO2 in the Colorado shortgrass steppe

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Abstract

An open-top-chamber (OTC) CO2 enrichment (∼720μmol mol-1) study was conducted in the Colorado shortgrass steppe from April 1997 through October 2001. Aboveground plant biomass increased under elevated CO2 and soil moisture content was typically higher than under ambient CO2 conditions. Fluxes of CH4, CO 2, NOx and N2O, measured weekly year round were not significantly altered by CO2 enrichment over the 55 month period of observation. During early summer of 2002, following the removal of the open-top-chambers from the CO2 enrichment sites in October 2001, we conducted a short term study to determine if soil microbial processes were altered in soils that had been exposed to double ambient CO2 concentrations during the growing season for the past five years. Microplots were established within each experimental site and 10mm of water or 10mm of water containing the equivalent of 10 gm-2 of ammonium nitrate-N was applied to the soil surface. Fluxes of CO2, CH4, NO x and N2O fluxes within control (unchambered), ambient CO2 and elevated CO2 OTC soils were measured at one to three day intervals for the next month. With water addition alone, CO 2 and NO emission did not differ between ambient and elevated CO 2 soils, while CH4 uptake rates were higher and N 2O fluxes lower in elevated CO2 soils. Adding water and mineral N resulted in increased CO2 emissions, increased CH 4 uptake and decreased NO emissions in elevated CO2 soils. The N addition study confirmed previous observations that soil respiration is enhanced under elevated CO2 and N immobilization is increased, thereby decreasing NO emission. © 2003 European Geosciences Union.

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Mosier, A. R., Pendall, E., & Morgan, J. A. (2003). Effect of water addition and nitrogen fertilization on the fluxes of CH4, CO2, NOx, and N2O following five years of elevated CO2 in the Colorado shortgrass steppe. Atmospheric Chemistry and Physics, 3(5), 1703–1708. https://doi.org/10.5194/acp-3-1703-2003

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